Switch networks for photonic fusion-based quantum computing
- URL: http://arxiv.org/abs/2109.13760v1
- Date: Tue, 28 Sep 2021 14:31:30 GMT
- Title: Switch networks for photonic fusion-based quantum computing
- Authors: Sara Bartolucci, Patrick Birchall, Damien Bonneau, Hugo Cable,
Mercedes Gimeno-Segovia, Konrad Kieling, Naomi Nickerson, Terry Rudolph and
Chris Sparrow
- Abstract summary: Fusion-based quantum computing (FBQC) offers a powerful approach to building a fault-tolerant universal quantum computer.
FBQC uses single-photon sources, linear-optical circuits, single-photon detectors, and optical switching with feedforward control.
New techniques and schemes enable major improvements in terms of muxing efficiency and reductions in hardware requirements.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Fusion-based quantum computing (FBQC) offers a powerful approach to building
a fault-tolerant universal quantum computer using photonic components --
single-photon sources, linear-optical circuits, single-photon detectors, and
optical switching with feedforward control. Both individual optical switches
and sophisticated switch networks are needed where it is necessary to perform
operations conditionally, using feedforward of previous photon-detection
outcomes, within the lifetime of remaining photons. Most visibly, feedforward
switching is required for fault-tolerant operations at the level of logical
qubits, which are needed in turn for useful quantum algorithms. However, switch
networks are also required for multiplexing ("muxing") stages that are needed
for generating specific small entangled resource states, where it is used to
boost the probabilities for allocating quantum states to fusion gates and other
operations -- a task which dominates the footprint of photonic FBQC. Despite
their importance, limited attention has been paid to exploring possible designs
of switch networks in this setting. Here we present a wide range of new
techniques and schemes which enable major improvements in terms of muxing
efficiency and reductions in hardware requirements. Since the use of photonic
switching heavily impacts qubit losses and errors, our schemes are constructed
with low switch depth. They also exploit specific features of linear-optical
circuits which are commonly used to generate entanglement in proposed quantum
computing and quantum network schemes.
Related papers
- Universal Logical Quantum Photonic Neural Network Processor via Cavity-Assisted Interactions [0.0]
We propose an architecture to prepare and perform logical quantum operations on arbitrary multimode multi-photon states using a quantum photonic neural network.
The proposed architecture paves the way for near-term quantum photonic processors that enable error-corrected quantum computation.
arXiv Detail & Related papers (2024-10-02T23:21:50Z) - Deterministic generation of concatenated graph codes from quantum emitters [0.0]
Concatenation of a fault-tolerant construction with a code able to efficiently correct loss is a promising approach to achieve this.
We propose schemes for generatingd graph codes using multi-photon emission from two quantum emitters or a single quantum emitter coupled to a memory.
We show that these schemes enable fault-tolerant fusion-based quantum regimes in practical computation with high photon loss and standard fusion gates.
arXiv Detail & Related papers (2024-06-24T14:44:23Z) - A Hybrid Approach to Mitigate Errors in Linear Photonic Bell-State Measurement for Quantum Interconnects [0.0]
We introduce a novel hybrid detection scheme for Bell-state measurement.
We derive explicit fidelities for quantum teleportation and entanglement swapping processes.
This work provides a new tool for linear optics schemes, with applications to quantum state engineering and quantum interconnects.
arXiv Detail & Related papers (2024-06-14T18:00:00Z) - Scalable Fault-Tolerant Quantum Technologies with Silicon Colour Centres [0.0]
A novel quantum information processing architecture based on optically active spins in silicon is proposed.
It offers a combined platform for scalable fault-tolerant quantum computing and networking.
arXiv Detail & Related papers (2023-11-08T17:52:57Z) - Near-Term Distributed Quantum Computation using Mean-Field Corrections
and Auxiliary Qubits [77.04894470683776]
We propose near-term distributed quantum computing that involve limited information transfer and conservative entanglement production.
We build upon these concepts to produce an approximate circuit-cutting technique for the fragmented pre-training of variational quantum algorithms.
arXiv Detail & Related papers (2023-09-11T18:00:00Z) - Simulation of Entanglement Generation between Absorptive Quantum
Memories [56.24769206561207]
We use the open-source Simulator of QUantum Network Communication (SeQUeNCe), developed by our team, to simulate entanglement generation between two atomic frequency comb (AFC) absorptive quantum memories.
We realize the representation of photonic quantum states within truncated Fock spaces in SeQUeNCe.
We observe varying fidelity with SPDC source mean photon number, and varying entanglement generation rate with both mean photon number and memory mode number.
arXiv Detail & Related papers (2022-12-17T05:51:17Z) - Quantum circuit debugging and sensitivity analysis via local inversions [62.997667081978825]
We present a technique that pinpoints the sections of a quantum circuit that affect the circuit output the most.
We demonstrate the practicality and efficacy of the proposed technique by applying it to example algorithmic circuits implemented on IBM quantum machines.
arXiv Detail & Related papers (2022-04-12T19:39:31Z) - Switching-free time-domain optical quantum computation with quantum
teleportation [0.0]
Optical switches and rerouting network are main obstacles to realize optical quantum computer.
We present an optical quantum computation platform that does not require such optical switches.
arXiv Detail & Related papers (2022-02-02T01:26:41Z) - Entanglement Rate Optimization in Heterogeneous Quantum Communication
Networks [79.8886946157912]
Quantum communication networks are emerging as a promising technology that could constitute a key building block in future communication networks in the 6G era and beyond.
Recent advances led to the deployment of small- and large-scale quantum communication networks with real quantum hardware.
In quantum networks, entanglement is a key resource that allows for data transmission between different nodes.
arXiv Detail & Related papers (2021-05-30T11:34:23Z) - Interleaving: Modular architectures for fault-tolerant photonic quantum
computing [50.591267188664666]
Photonic fusion-based quantum computing (FBQC) uses low-loss photonic delays.
We present a modular architecture for FBQC in which these components are combined to form "interleaving modules"
Exploiting the multiplicative power of delays, each module can add thousands of physical qubits to the computational Hilbert space.
arXiv Detail & Related papers (2021-03-15T18:00:06Z) - Rapid characterisation of linear-optical networks via PhaseLift [51.03305009278831]
Integrated photonics offers great phase-stability and can rely on the large scale manufacturability provided by the semiconductor industry.
New devices, based on such optical circuits, hold the promise of faster and energy-efficient computations in machine learning applications.
We present a novel technique to reconstruct the transfer matrix of linear optical networks.
arXiv Detail & Related papers (2020-10-01T16:04:22Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.